Pineapple SWEET10 is a glucose transporter

Author:

Fakher Beenish12,Ashraf M Arif3,Wang Lulu12,Wang Xiaomei4,Zheng Ping2,Aslam Mohammad25,Qin Yuan2ORCID

Affiliation:

1. Guangxi University State Key Laboratory for Conservation and Utilization of Subtropical Agro-Bioresources, Guangxi Key Lab of Sugarcane Biology, College of Agriculture, , Nanning 530004, Guangxi, China

2. Fujian Agriculture and Forestry University College of Life Sciences, Key Laboratory of Genetics, Breeding and Multiple Utilization of Crops, Ministry of Education, Fujian Provincial Key Laboratory of Haixia Applied Plant Systems Biology, College of Agriculture, , Fuzhou, Fujian 350002, China

3. Howard University Department of Biology, , Washington DC 20059, USA

4. Guangxi Academy of Agricultural Sciences, Nanning Investigation Station of South Subtropical Fruit Trees, Ministry of Agriculture Horticulture Research Institute, , Nanning 530004, China

5. Donald Danforth Plant Science Center , Saint Louis, MO 63132, USA

Abstract

Abstract SWEET transporters are a unique class of sugar transporters that play vital roles in various developmental and physiological processes in plants. While the functions of SWEETs have been well established in model plants such as Arabidopsis, their functions in economically important fruit crops like pineapple have not been well studied. Here we aimed to investigate the substrate specificity of pineapple SWEETs by comparing the protein sequences of known glucose and sucrose transporters in Arabidopsis with those in pineapple. Our genome-wide approach and 3D structure comparison showed that the Arabidopsis SWEET8 homolog in pineapple, AcSWEET10, shares similar sequences and protein properties responsible for glucose transport. To determine the functional conservation of AcSWEET10, we tested its ability to complement glucose transport mutants in yeast and analyzed its expression in stamens and impact on the microspore phenotype and seed set in transgenic Arabidopsis. The results showed that AcSWEET10 is functionally equivalent to AtSWEET8 and plays a critical role in regulating microspore formation through the regulation of the Callose synthase5 (CalS5), which highlights the importance of SWEET transporters in pineapple. This information could have important implications for improving fruit crop yield and quality by manipulating SWEET transporter activity.

Funder

Guangxi Academy of Agricultural Sciences Basic Research Project

the Project of Guangxi Featured Fruit Innovation Team on Pineapple Breeding and Cultivation Post under the National Modern Agricultural Industry Technology System

the General Project of Fujian Natural Science Foundation

Science and Technology Innovation Project of Pingtan Science and Technology Research Institute

Science and Technology Major Project of Guangxi

Publisher

Oxford University Press (OUP)

Subject

Horticulture,Plant Science,Genetics,Biochemistry,Biotechnology

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